Updated
Updated · SciTechDaily · Jul 20
Purdue Engineers Create CoAl Nanolaminate 10x Stronger Than Steel, Sustaining 15% Strain
Updated
Updated · SciTechDaily · Jul 20

Purdue Engineers Create CoAl Nanolaminate 10x Stronger Than Steel, Sustaining 15% Strain

1 articles · Updated · SciTechDaily · Jul 20

Summary

  • A cobalt-aluminum nanolaminate from Purdue reached 6 GPa yield strength—about six to 10 times high-strength structural steel—while still sustaining 15% plastic strain at room temperature.
  • The team achieved that mix by embedding dislocations during sputtering deposition and adding amorphous interfaces that partially crystallize under stress, generating more dislocations instead of letting the brittle intermetallic crack.
  • In situ compression tests and molecular dynamics simulations showed those interfaces actively helping the material deform, pointing to a new way to make normally brittle intermetallic compounds usable in demanding conditions.
  • Jet engines, gas turbines, energy systems and defense hardware could benefit if the concept scales beyond today’s thin-film nanoscale layers into bulk CoAl composites and other intermetallic materials.

Insights

A material ten times stronger than steel exists. How long until it moves from the lab to our jets and reactors?
This new super-metal gains strength from flaws. Is imperfection the secret to designing all future materials?

Breaking the Strength-Ductility Barrier: CoAl Nanolaminate Achieves 6 GPa Yield Strength and 15% Plastic Strain

Overview

In 2026, Purdue University engineers made a major breakthrough in materials science by creating a cobalt aluminum (CoAl) nanolaminate that overcomes the usual tradeoff between strength and ductility. This new material is made using magnetron sputtering deposition, which forms a nanoscale layered structure with a high density of dislocations and a unique framework of amorphous interfaces. As a result, the CoAl nanolaminate achieves an impressive yield strength of 6 GPa and can withstand 15% plastic strain at room temperature—an unprecedented combination for intermetallic materials. This innovation opens new possibilities for advanced, durable materials in demanding industries.

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